Robust trajectory tracking control of underactuated unmanned surface vehicles with exponential stability: theory and experimental validation

Author:

Yu Rui,Zhou Hua

Abstract

Purpose Trajectory tracking is an important issue to underactuated unmanned surface vehicles (USVs). However, parametric uncertainties and environmental disturbances bring great challenges to the precise trajectory tracking control of USVs. This paper aims to propose a robust trajectory tracking control algorithm with exponential stability for underactuated USVs with parametric uncertainties and unknown environmental disturbances. Design/methodology/approach In this method, the backstepping method and sliding mode control method are combined to ensure that the underactuated USV can track and maintain the desired trajectory. In addition, a modified switching-gain adaptation algorithm is adopted to enhance the robustness and reduce chattering. Besides, the global exponential stability of the closed-loop system is proved by Lyapunov’s direct method. Findings The proposed method in this paper offers a robust trajectory tracking solution to underactuated USVs and it is verified by simulations and experiments. Compared with the traditional proportion-integral-derivative method and several state-of-the-art algorithms, the proposed method has superior performance in simulation and experimental results. Originality/value This paper proposes a robust trajectory tracking control algorithm with exponential stability for underactuated USVs. The proposed method achieves exponential stability with better robustness and transient performance.

Publisher

Emerald

Subject

Industrial and Manufacturing Engineering,Computer Science Applications,Control and Systems Engineering

Reference29 articles.

1. Global exponential tracking control for an autonomous surface vessel: an integral concurrent learning approach;IEEE Journal of Oceanic Engineering,2018

2. Exponential tracking control of robotic manipulators with uncertain dynamics and kinematics;IEEE Transactions on Industrial Informatics,2018

3. Adaptive neural network control of underactuated surface vessels with guaranteed transient performance: theory and experimental results;IEEE Transactions on Industrial Electronics,2020

4. Adaptive sliding-mode path following control system of the underactuated USV under the influence of ocean currents;Journal of Systems Engineering and Electronics,2018

5. Adaptive neural control of underactuated surface vessels with prescribed performance guarantees;IEEE Transactions on Neural Networks and Learning Systems,2018

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